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Gradient guidance for diffusion models: A n optimization perspective

4 Pith papers cite this work. Polarity classification is still indexing.

4 Pith papers citing it

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UNVERDICTED 4

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representative citing papers

MMaDA: Multimodal Large Diffusion Language Models

cs.CV · 2025-05-21 · unverdicted · novelty 6.0

MMaDA is a unified multimodal diffusion model using mixed chain-of-thought fine-tuning and a new UniGRPO reinforcement learning algorithm that outperforms specialized models in reasoning, understanding, and text-to-image tasks.

Nonlinear Assimilation via Score-based Sequential Langevin Sampling

math.NA · 2024-11-20 · unverdicted · novelty 6.0

SSLS combines score-based Langevin Monte Carlo with annealing for nonlinear posterior updates in sequential assimilation, supported by total-variation convergence bounds that establish asymptotic stability and numerical tests in high-dimensional nonlinear settings.

Flow Matching Guide and Code

cs.LG · 2024-12-09 · unverdicted · novelty 2.0

Flow Matching is a generative modeling framework with mathematical foundations, design choices, extensions, and open-source PyTorch code for applications like image and text generation.

citing papers explorer

Showing 4 of 4 citing papers.

  • Demystifying Multimodal Biomolecular Co-design With Intrinsic Geodesic Coupling q-bio.BM · 2026-06-01 · unverdicted · none · ref 95

    GeoCoupling optimizes temporal couplings between modalities in biomolecular generative models and outperforms synchronous baselines on drug design and protein design tasks.

  • MMaDA: Multimodal Large Diffusion Language Models cs.CV · 2025-05-21 · unverdicted · none · ref 80

    MMaDA is a unified multimodal diffusion model using mixed chain-of-thought fine-tuning and a new UniGRPO reinforcement learning algorithm that outperforms specialized models in reasoning, understanding, and text-to-image tasks.

  • Nonlinear Assimilation via Score-based Sequential Langevin Sampling math.NA · 2024-11-20 · unverdicted · none · ref 27

    SSLS combines score-based Langevin Monte Carlo with annealing for nonlinear posterior updates in sequential assimilation, supported by total-variation convergence bounds that establish asymptotic stability and numerical tests in high-dimensional nonlinear settings.

  • Flow Matching Guide and Code cs.LG · 2024-12-09 · unverdicted · none · ref 30

    Flow Matching is a generative modeling framework with mathematical foundations, design choices, extensions, and open-source PyTorch code for applications like image and text generation.